0

To check if x variable is equal to 1 or 2, i would do normally something like:

if (x === 1 || x === 2){
   // ....
}

but this can get in some cases very cumbersome.

Edit :I'm working right now on this and writing the fonction name every time i think can be done in a cleaner manner:

if (
      this.getNotificationStatus() === 'denied' ||
      this.getNotificationStatus() === 'blocked'
    )

Is there any other lighter way to write this?

THANKS

2

You could do:

if ([1, 2].includes(x)) {
  // ....
}

Or:

if ([1, 2].indexOf(x) > -1) {
  // ....
}

Or:

switch (x) {
  case 1:
  case 2:
    // ....
    break;
  default:
}

I don't think they're "lighter" than your solution though.

| improve this answer | |
  • Note: includes doesn't work prior ES2016. indexOf doesn't supported in some old browsers (IE9 for example). – NoSkill Jan 31 at 9:37
  • Yes, and includes doesn't work in IE at all. – technophyle Jan 31 at 9:37
0

Try this:

if ([1, 2, 3].includes(x)) {
  // your code here
}
| improve this answer | |

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